Muto A, Kraemer D, Hao Q, Ren Z F, Chen G
Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Rev Sci Instrum. 2009 Sep;80(9):093901. doi: 10.1063/1.3212668.
The maximum efficiency of a thermoelectric generator is determined by the material's dimensionless figure of merit ZT. Real thermoelectric material properties are highly temperature dependent and are often measured individually using multiple measurement tools on different samples. As a result, reported ZT values have large uncertainties. In this work we present an experimental technique that eliminates some of these uncertainties. We measure the Seebeck coefficient, electrical conductivity, and thermal conductivity of a single element or leg, as well as the conversion efficiency, under a large temperature difference of 2-160 degrees C. The advantages of this technique include (1) the thermoelectric leg is mounted only once and all measurements are in the same direction and (2) the measured properties are corroborated by efficiency measurements. The directly measured power and efficiency are compared to the values calculated from the measured properties and agree within 0.4% and 2%, respectively. The realistic testing conditions of this technique make it ideal for material characterization prior to implementation in a real thermoelectric generator.
热电发电机的最大效率由材料的无量纲品质因数ZT决定。实际热电材料的特性高度依赖于温度,并且通常使用多种测量工具对不同样品单独进行测量。因此,报道的ZT值存在很大的不确定性。在这项工作中,我们提出了一种消除其中一些不确定性的实验技术。我们在2至160摄氏度的大温差下测量单个元件或热电器件的塞贝克系数、电导率和热导率,以及转换效率。该技术的优点包括:(1)热电器件仅安装一次,所有测量均沿相同方向进行;(2)通过效率测量来证实所测量的特性。将直接测量的功率和效率与根据测量特性计算出的值进行比较,二者分别在0.4%和2%的范围内相符。该技术逼真的测试条件使其成为在实际热电发电机中应用之前进行材料表征的理想选择。